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155. 最小栈
原题链接:LeetCode 155. 最小栈
题目描述
设计一个支持 push ,pop ,top 操作,并能在常数时间内检索到最小元素的栈。
实现 MinStack 类:
MinStack()初始化堆栈对象。void push(int val)将元素val推入堆栈。void pop()删除堆栈顶部的元素。int top()获取堆栈顶部的元素。int getMin()获取堆栈中的最小元素。
示例 1:
输入:
["MinStack","push","push","push","getMin","pop","top","getMin"][[],[-2],[0],[-3],[],[],[],[]]输出:
[null,null,null,null,-3,null,0,-2]解释: MinStack minStack = new MinStack(); minStack.push(-2); minStack.push(0); minStack.push(-3); minStack.getMin(); --> 返回 -3. minStack.pop(); minStack.top(); --> 返回 0. minStack.getMin(); --> 返回 -2.
提示:
-231 <= val <= 231 - 1
pop、top和getMin操作总是在 非空栈 上调用push,pop,top, andgetMin最多被调用 3 * 104 次
难度: Medium
题解代码
javascript
var MinStack = function() {
this.stack = []
this.min = []
};
/**
* @param {number} val
* @return {void}
*/
MinStack.prototype.push = function(val) {
this.stack.push(val)
this.min.push(this.min.length ? Math.min(val, this.min[this.min.length - 1]) : val)
};
/**
* @return {void}
*/
MinStack.prototype.pop = function() {
this.stack.pop()
this.min.pop()
};
/**
* @return {number}
*/
MinStack.prototype.top = function() {
return this.stack[this.stack.length - 1]
};
/**
* @return {number}
*/
MinStack.prototype.getMin = function() {
return this.min[this.min.length - 1]
};
/**
* Your MinStack object will be instantiated and called as such:
* var obj = new MinStack()
* obj.push(val)
* obj.pop()
* var param_3 = obj.top()
* var param_4 = obj.getMin()
*/